TY - JOUR
T1 - Machine Learning-Based Optimized 3G/LTE/5G Planar Wideband Antenna With Tri-Bands Filtering Notches
AU - Aliyu Babale, Suleiman
AU - Kim Geok, Tan
AU - Kamal Abdul Rahim, Sharul
AU - Pao Liew, Chia
AU - Musa, Umar
AU - Fatihu Hamza, Mukhtar
AU - Awadh Bakhuraisa, Yaser
AU - Li Lim, Li
N1 - Publisher Copyright:
© 2013 IEEE.
PY - 2024
Y1 - 2024
N2 - A multiband microstrip-fed wideband (WB) antenna with filtering notches is described for 3 mathrm G / 4 mathrm G / 5 mathrm G applications. The proposed antenna comprises three notch bands by etching a modified inverted U-slot, a square ring slot, and an interdigital inductor slot on the patch element and feedline. The antenna resonates at 1.9,2.3 , and 3.5 mathrm ~GHz due to the resonant components' mutual interaction, which eliminates interference at other frequencies. The antenna's measured S-11 are 18.79 mathrm ~dB at 1.9 mathrm ~GHz,-24.8 mathrm ~dB at 2.4 mathrm ~GHz , and -40.6 mathrm ~dB at 3.5 mathrm ~GHz , showing a multiband function with a band-reject level of 0.4 mathrm ~dB. The VSWR is less than two at all resonant frequencies. The effects of altering the notch dimensions on the S-11 and VSWR were explored. The antenna was developed and tested using a Rogers RT/Duroid 5880 substrate. The agreement between measured and simulated results was satisfactory. The S-11 result was validated using the ADS schematic and machine learning techniques. The proposed triband-notched antenna offers encouraging results, with radiation patterns exhibiting omnidirectional characteristics and effective performance within the required frequencies. Current distribution analysis reveals how notches disrupt surface current and lower radiation at specific frequencies. The antenna's gain and efficiency performed satisfactorily in the stated frequency ranges.
AB - A multiband microstrip-fed wideband (WB) antenna with filtering notches is described for 3 mathrm G / 4 mathrm G / 5 mathrm G applications. The proposed antenna comprises three notch bands by etching a modified inverted U-slot, a square ring slot, and an interdigital inductor slot on the patch element and feedline. The antenna resonates at 1.9,2.3 , and 3.5 mathrm ~GHz due to the resonant components' mutual interaction, which eliminates interference at other frequencies. The antenna's measured S-11 are 18.79 mathrm ~dB at 1.9 mathrm ~GHz,-24.8 mathrm ~dB at 2.4 mathrm ~GHz , and -40.6 mathrm ~dB at 3.5 mathrm ~GHz , showing a multiband function with a band-reject level of 0.4 mathrm ~dB. The VSWR is less than two at all resonant frequencies. The effects of altering the notch dimensions on the S-11 and VSWR were explored. The antenna was developed and tested using a Rogers RT/Duroid 5880 substrate. The agreement between measured and simulated results was satisfactory. The S-11 result was validated using the ADS schematic and machine learning techniques. The proposed triband-notched antenna offers encouraging results, with radiation patterns exhibiting omnidirectional characteristics and effective performance within the required frequencies. Current distribution analysis reveals how notches disrupt surface current and lower radiation at specific frequencies. The antenna's gain and efficiency performed satisfactorily in the stated frequency ranges.
KW - Wideband antenna
KW - interdigital inductor
KW - multiband
KW - notch band
KW - radiating patch
KW - split ring resonator
UR - http://www.scopus.com/inward/record.url?scp=85194874919&partnerID=8YFLogxK
U2 - 10.1109/ACCESS.2024.3407371
DO - 10.1109/ACCESS.2024.3407371
M3 - Article
AN - SCOPUS:85194874919
SN - 2169-3536
VL - 12
SP - 80669
EP - 80686
JO - IEEE Access
JF - IEEE Access
ER -